LegoAI: Towards Building Reliable AI Software for Real-world Applications

Mengyuan Hou, Hui Xu
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Abstract

Deep learning is a powerful technique for many real- world problems. However, due to its unexplainable characteristic and over-fitting issue, there remains a great challenge for building reliable system with deep learning modules. In this paper, we present the idea of LegoAI that aims to build reliable AI software with pluggable modules of different functionalities, such as ensemble for fault tolerance and anomaly detection for result validation. In particular, we have applied the idea to develop a real-world AI software for handwritten digit recognition and achieved promising results.
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LegoAI:为现实世界的应用构建可靠的人工智能软件
深度学习是解决许多现实问题的强大技术。然而,由于其不可解释的特性和过度拟合问题,用深度学习模块构建可靠的系统仍然是一个很大的挑战。在本文中,我们提出了LegoAI的思想,旨在构建具有不同功能的可插拔模块的可靠AI软件,例如用于容错的集成和用于结果验证的异常检测。特别是,我们将这一想法应用于开发现实世界的手写数字识别人工智能软件,并取得了可喜的成果。
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